English

Observation of geometry dependent conductivity in two-dimensional electron systems

Mesoscale and Nanoscale Physics 2016-05-25 v3

Abstract

We report electrical conductivity σ\sigma measurements on a range of two-dimensional electron gases (2DEGs) of varying linear extent. Intriguingly, at low temperatures (TT) and low carrier density (nsn_{\mathrm{s}}) we find the behavior to be consistent with σLα\sigma \sim L^{\alpha}, where LL is the length of the 2DEG along the direction of transport. Importantly, such scale-dependent behavior is precisely in accordance with the scaling hypothesis of localization~[Abrahams~\textit{et al.}, Phys. Rev. Lett. \textbf{42}, 673 (1979)] which dictates that in systems where the electronic wave function ξ\xi is localized, σ\sigma is not a material-specific parameter, but depends on the system dimensions. From our data we are able to construct the "β\beta-function" (h/e2)dlnσ/dlnL\equiv (h/e^2) d \ln \sigma / d \ln L and show this to be strongly consistent with theoretically predicted limiting values. These results suggest, remarkably, that the electrons in the studied 2DEGs preserve phase coherence over lengths  10 μ\sim~10~\mum. This suggests the utility of the 2DEGs studied towards applications in quantum information as well as towards fundamental investigations into many-body localized phases.

Keywords

Cite

@article{arxiv.1505.03444,
  title  = {Observation of geometry dependent conductivity in two-dimensional electron systems},
  author = {Dirk Backes and Richard Hall and Michael Pepper and Harvey Beere and David Ritchie and Vijay Narayan},
  journal= {arXiv preprint arXiv:1505.03444},
  year   = {2016}
}
R2 v1 2026-06-22T09:33:37.540Z